Triple-Regulation Strategy toward Multivariate Isomeric Covalent Organic Frameworks for Efficient Photocatalysis

化学 异构化 共价键 产量(工程) 量子化学 吸附 密度泛函理论 计算化学 基质(水族馆) 量子产额 分子 光催化 电子结构 表征(材料科学) 氧气 化学键 纳米技术 工作(物理) 量子化学 网络共价键合 组合化学 光化学 化学结构 立体化学 化学物理 化学反应 氧原子
作者
Pei Huang,Yixin Ouyang,Qiang Li,Lu-Hua Hou,Cheng Xiao,Chen-Bo Tang,Zi‐Xin Yang,Qing Huang,Mi Zhang,Meng Lu,Ya‐Qian Lan
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:148 (24): 25220-25231
标识
DOI:10.1021/jacs.6c07811
摘要

As an important branch of structure chemistry, isomer structural chemistry has developed tremendously. However, the isomerization of periodic framework materials especially isomeric covalent organic frameworks (Iso-COFs) remains a great challenge due to their intrinsic structural complexity and lack of a systematic regulation strategy. In this work, we provided a triple synergic regulation strategy including geometric, positional, and linkage isomerism. Under the guidance of this multiple-regulation strategy, we successfully obtained recorded Iso-COFs with 15 kinds with the same structural framework and identical chemical formula (C 48 H 36 N 6 O 3 ). With functional design, 6 model Iso-COFs synthesized through three isomerism strategies were chosen to reveal the influence of isomeric structural differences on their photochemical properties in H 2 O 2 photosynthesis. Therefore, compared with other control samples, TDA-BTD COF, which possessed excellent optical properties and the lowest oxygen adsorption energy, exhibited satisfactory photochemical H 2 O 2 production efficiency (2016.26 μmol g –1 h –1 ) and an apparent quantum yield (AQY) of 3.67% at 420 nm. Density functional theory (DFT) calculations and in situ characterization results collectively demonstrated that positional, linkage, and geometric isomerisms regulate the substrate adsorption behavior, charge separation, and electronic structure of the catalyst. For the first time, this work put forward the multidimensional regulation strategy for designing periodic framework-based isomers, which realized the recorded number of Iso-COFs with identical chemical formula to date, also providing a pioneering structural illustration for in-depth exploration of the structure–performance relationship of Iso-COF from multiple dimensions.
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